Absorption column having external heat exchange circuit
11628392 · 2023-04-18
Assignee
Inventors
- Sophia Schmidt (Frankfurt am Main, DE)
- Dorit Rappold (Frankfurt, DE)
- Christian Frey (Frankfurt am Main, DE)
- Sharon Corbet (Frankfurt, DE)
- Alfred Gubrinski (Frankfurt am Main, DE)
Cpc classification
Y02P20/151
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D2252/2026
PERFORMING OPERATIONS; TRANSPORTING
B01D53/18
PERFORMING OPERATIONS; TRANSPORTING
C01B3/52
CHEMISTRY; METALLURGY
Y02A30/27
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B01D2252/20489
PERFORMING OPERATIONS; TRANSPORTING
B01D2252/20468
PERFORMING OPERATIONS; TRANSPORTING
C10K1/004
CHEMISTRY; METALLURGY
B01D53/1462
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D53/18
PERFORMING OPERATIONS; TRANSPORTING
C01B3/52
CHEMISTRY; METALLURGY
Abstract
An absorption column including at least one external heat exchange circuit for cooling or heating the absorption liquid, including one or more serially connected heat exchangers, wherein the junction of the pipeline for withdrawal of the absorption liquid from the column is disposed above the junction of the pipeline into the first heat exchanger in the flow direction, wherein the pipeline also includes a dumped bed.
Claims
1. An absorption column comprising at least one external heat exchange circuit for cooling or heating an absorption liquid, comprising one or more serially connected heat exchangers, a first junction, a second junction, and a pipeline, wherein the first junction configured for withdrawal of the absorption liquid from the column is disposed above the second junction configured for return of the adsorption liquid from the one or more serially connected heat exchangers, wherein the pipeline fluidically connects the first junction to a dumped bed, which is fluidically connected to the one or more serially connected heat exchangers, which are fluidically connected to the second junction.
2. The absorption column according to claim 1, wherein the dumped bed comprises packing bodies.
3. The absorption column according to claim 1, wherein the first junction and the second junction and the dumped bed and the at least one heat exchanger are arranged at such relative heights that the flow of the absorption liquid through the heat exchanger circuit is driven solely by gravity.
4. The absorption column according to claim 1, wherein the one or more heat exchangers are each connected to a coolant, cold water or cooling water circuit or are connected as economizers to an absorption medium stream.
Description
BRIEF DESCRIPTION OF THE FIGURE
(1) For a further understanding of the nature and objects for the present invention, reference should be made to the following detailed description, taken in conjunction with the accompanying drawings, in which like elements are given the same or analogous reference numbers and wherein:
(2) The FIGURE is a schematic representation of one embodiment of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(3) Absorption column comprising at least one external heat exchange circuit for cooling or heating the absorption liquid, comprising one or more serially connected heat exchangers, wherein the junction of the pipeline for withdrawal of the absorption liquid from the column is disposed above the junction of the pipeline into the first heat exchanger in the flow direction, characterized in that a dumped bed is installed in the course of this pipeline.
(4) The dumped bed prevents the absorption liquid from shooting waterfall-like down the inclined section of the feed conduit to the cooler during part-load operation, which would result in severe bubble formation and entrainment of gas. The dumped bed retards the flow rate and thus reduces the input of mechanical energy into the absorption liquid, therefore reducing bubble formation. Any bubbles nevertheless formed are caught at the surface of the packing bodies and there coalesce into larger bubbles which ascend in the circuit conduit counter to the liquid flow and arrive in the column. These effects reduce the amount of bubbles entrained into the heat exchanger. This counteracts an impairment in heat exchange in the heat exchanger.
(5) A preferred embodiment of the absorption column is characterized in that the dumped bed consists of packing bodies. This is to be understood as meaning primarily random packing bodies such as are used for mass transfer in columns. These packing bodies are obtainable in numerous designs so that from a large choice a suitable shape, a suitable material and a suitable size may be found.
(6) A further preferred embodiment of the absorption column is characterized in that respectively the pipeline for feeding the absorption liquid into the heat exchanger(s) joins the bottom side thereof and the pipeline for discharging joins the top side thereof. In this way the absorption liquid flows through the heat exchanger(s) from bottom to top, as a result of which fewer gas bubbles are present in the liquid and the contact between the liquid and the heat exchanger surface is disrupted by bubbles to a lesser extent.
(7) A further preferred embodiment of the absorption column is characterized in that the withdrawal point and the return point for the absorption liquid from the column and the dumped bed and the heat exchanger(s) are arranged at such relative heights that the flow of the absorption liquid through the heat exchanger circuit is driven solely by gravity. As a result of the eschewal of pumps, less mechanical energy is transferred to the liquid which would otherwise favour bubble formation.
(8) A further preferred embodiment of the absorption column is characterized in that the heat exchangers are each connected to a coolant, cold water or cooling water circuit or are connected as economizers to an absorption medium stream internal to the process. Thus in a specific individual case the cost-effective heat transfer medium or a combination of various heat transfer media may be used by connecting a plurality of heat exchangers in series. An economizer is a heat exchanger which brings two process streams, in this case two absorption medium streams, into heat exchange.
(9) The invention further provides for the use of an absorption column according to the invention for operating a plant for performing a process for removal of concomitant gases from synthesis gas, for example the Rectisol, Purisol or Selexol process.
(10) The invention further provides for the use of an absorption column according to the invention for operating a gas purification process which uses as the absorption medium mixtures of methanol and N-methyl pyrrolidone, N-methyl pyrrolidone and an amine-containing absorption medium (in particular diethanolamine, diisopropylamine, diethylamine) or methanol and an amine-containing absorption medium (in particular diethanolamine, diisopropylamine or diethylamine).
(11) Further features, advantages and possible applications of the invention are apparent from the following description of an exemplary embodiment and the drawing. All described and/or depicted features on their own or in any desired combination form the subject matter of the invention, irrespective of the way in which they are combined in the claims and the way in which said claims refer back to one another.
(12) The FIGURE shows by way of example an absorption column according to the invention having an external heat exchange circuit.
(13) The construction of an absorption column according to the invention having an external heat exchange circuit shall be elucidated with reference to the drawing by way of example.
(14) The external heat exchanger circuit 1 comprises the dumped bed 2, the heat exchangers 3 and 4 and the circuit conduit 5. The drawing further shows an absorption column 6. In this column 6 synthesis gas 7 is scrubbed by a liquid absorption medium 8. The thus treated synthesis gas 9 and the laden absorption medium 10 are discharged from the column 6 for respective further treatment (not shown). Once laden in the upper part of the column 6 and heated by the thus liberated heat of absorption, the absorption medium 8 is discharged from the column 6 and via the circuit conduit 5 passed to the dumped bed 2. The dumped bed 2 may consist for example of a dumped quantity of Pall rings, Raschig rings or inert bodies. Its purpose is to damp turbulences in the downward flow to inhibit the formation of gas bubbles and the entrainment of gas to the greatest possible extent. Otherwise the entrained gas/the gas bubbles would be carried along by the flow into the heat exchangers 3 and 4 and therein impair the contact between the absorption liquid and the heat exchange surface.
(15) The absorption liquid flows through the heat exchangers 3 and 4 from bottom to top likewise to avoid turbulence to the greatest possible extent. The heat exchanger 3 is in this example used as an economizer and exchanges the heat of the absorption medium flowing through the circuit conduit 5 against the heat of another absorption medium stream 11 internal to the process. In this example the heat exchanger 4 operates as a cooler and is operated with a coolant 12 cooled in a coolant plant (not shown).
(16) The opening 13 for returning the absorption medium into the column 6 via the circuit conduit 5 joins the column 6 at a height sufficiently below the opening for withdrawal 14 for the transport of the absorption liquid through the heat exchanger circuit to be achievable by gravity alone.
(17) The invention provides a cost-effective solution for minimizing bubble formation and thus maintaining good heat exchange in the heat exchange circuit of an absorption column. The invention is accordingly industrially applicable.
LIST OF REFERENCE NUMERALS
(18) 1 Heat exchange circuit 2 Dumped bed 3 Heat exchanger (e.g. economizer) 4 Heat exchanger (e.g. cooler) Circuit conduit 6 Absorption column 7 Synthesis gas 8 Absorption medium 9 Synthesis gas, treated Laden absorption medium 11 Absorption medium stream internal to process 12 Coolant 13 Opening for returning absorption medium 14 Opening for withdrawal of the absorption medium
(19) It will be understood that many additional changes in the details, materials, steps and arrangement of parts, which have been herein described in order to explain the nature of the invention, may be made by those skilled in the art within the principle and scope of the invention as expressed in the appended claims. Thus, the present invention is not intended to be limited to the specific embodiments in the examples given above.